Nano-Thick Amorphous Oxide Layer Produced by Plasma on Type 316L Stainless Steel for Improved Corrosion Resistance Under Plastic Deformation

Author:

Dorri Megan Mahrokh12,Turgeon Stéphane2,Cloutier Maxime12,Chevallier Pascale2,Mantovani Diego12

Affiliation:

1. Laboratory for Biomaterials and Bioengineering, CRC-I, Department of Mining, Metallurgical and Materials Engineering, CHU de Québec Research Center, Laval University, Pavillon Pouliot, 1065 avenue de la Médecine, Québec, QC, Canada, G1V 0A6.

2. CHU Research Center of Quebec, St. François d’Assise Hospital, 10 rue de l’Espinay, Québec, QC, Canada, G1L3L5.

Abstract

Localized corrosion constitutes a major concern in medical devices made of stainless steel. The conventional approach to circumvent such a problem is to convert the surface polycrystalline microstructure of the native oxide layer to an amorphous oxide layer, a few micrometers thick. This process cannot, however, be used for devices such as stents that undergo plastic deformation during their implantation, especially those used in vascular surgery for the treatment of cardiac, neurological, and peripheral vessels. This work explores the feasibility of producing a nano-thick plastic-deformation resistant amorphous oxide layer by plasma-based surface modifications. By varying the plasma process parameters, oxide layers with different features were produced and their properties were investigated before and after clinically-relevant plastic deformation. These properties and the related corrosion mechanisms were mainly evaluated using the electrochemical methods of open-circuit potential, cyclic potentiodynamic polarization, and electrochemical impedance spectroscopy. Results showed that, under optimal conditions, the resistance to corrosion and to the permeation of ions in a phosphate buffered saline, even after deformation, was significantly enhanced.

Publisher

NACE International

Subject

General Materials Science,General Chemical Engineering,General Chemistry

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